Medicament proportioning equipment for desulfurization wastewater treatment
By designing a chemical mixing equipment with a pounding type mixing mechanism and a crushing mechanism, the problem that existing equipment cannot regulate the reaction pressure of the drug liquid and grinding the drug particles is solved, and more efficient chemical mixing and chemical mixing are achieved.
Patent Information
- Application Number
- CN202510626204.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2045-05-15
AI Technical Summary
The existing pharmaceutical dispensing equipment for desulfurization wastewater treatment cannot regulate the reaction pressure of the pharmaceutical liquid, resulting in insufficient mixing of the pharmaceutical liquid and the inability to further mill the precipitated pharmaceutical particles, affecting the proportioning efficiency of the pharmaceutical agent.
A pharmaceutical rationing device including a pounding mixing mechanism, a buffering exhaust mechanism and a tandem discharge mechanism is designed. The hydraulic cam is driven to rotate through the drive shaft, and the continuous extraction operation of the liquid is achieved by combining the cam structure and the elastic structure, and the precipitated drug granules are milled through the rolling mechanism.
Effectively regulate the reaction pressure of the drug solution, improve the efficiency of the drug solution mixing, accelerate the reaction rate, and enhance the reactivity of the drug particles through grinding, and improve the efficiency of the drug ratio.
Smart Images

Figure CN120132701A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of pharmaceutical formulation, and specifically refers to a pharmaceutical formulation device for desulfurized wastewater treatment. Background Art
[0002] Desulfurized wastewater is the wastewater generated during the limestone wet flue gas desulfurization process. Since the impurities contained in the wastewater mainly include suspended solids, supersaturated sulfites, sulfates, and heavy metals and other harmful substances, in order to avoid environmental pollution, the wastewater needs to be treated, and certain chemical agents need to be added during the treatment process. Since the wastewater contains many components, during use, it is necessary to make targeted formulations of various pharmaceutical components according to the water quality conditions.
[0003] Currently, the existing pharmaceutical formulation devices for desulfurized wastewater treatment have the following problems: The existing pharmaceutical formulation devices for desulfurized wastewater treatment do not have the ability to regulate the reaction pressure of the liquid medicine during the formulation process, resulting in the inability to timely discharge the bubbles generated inside the liquid medicine during the mixing reaction, and the inability to enhance the contact strength between the liquid medicine molecules. Moreover, the traditional pharmaceutical formulation devices for desulfurized wastewater treatment also do not have the ability to further grind the precipitated drug particles, thereby affecting the full fusion of the liquid medicine during the formulation, and thus reducing the formulation efficiency of the pharmaceutical agents. Therefore, it cannot meet the current usage requirements for the pharmaceutical formulation devices for desulfurized wastewater treatment. Summary of the Invention
[0004] In view of the above situation, in order to overcome the defects of the prior art, the present solution provides a pharmaceutical formulation device for desulfurized wastewater treatment that can regulate the reaction pressure of the liquid medicine during the formulation process and can further grind the precipitated drug particles.
[0005] The technical solution adopted by the present solution is as follows: A pharmaceutical formulation device for desulfurized wastewater treatment proposed by the present solution includes a base, a medicine preparation rack, a pressing and mixing mechanism, a buffer type exhaust mechanism, and a series type liquid discharge mechanism. The medicine preparation rack is arranged on the upper wall of the base. The pressing and mixing mechanism includes a driving mechanism, a liquid pressing mechanism, and a rolling mechanism. The driving mechanism is arranged at both ends of the medicine preparation rack. The liquid pressing mechanism is arranged on the upper wall of the medicine preparation rack. The rolling mechanism is arranged inside the liquid pressing mechanism. The buffer type exhaust mechanism includes a pressure reducing mechanism and a gas filtering mechanism. The pressure reducing mechanism is arranged on one side of the liquid pressing mechanism. The gas filtering mechanism is arranged on the side of the medicine preparation rack away from the pressure reducing mechanism. The series type liquid discharge mechanism is arranged inside the base wall.
[0006] As a further optimization of the solution in this case, the driving mechanism includes a driving motor, a driving gear, a transmission groove, a driving frame, a driven gear, a gear transmission belt and a driving shaft. The driving motors are symmetrically arranged on the inner walls at both ends of the medicine dispensing rack. The driving gear is arranged at the power end of the driving motor. The transmission grooves are symmetrically arranged on the upper walls at both ends of the medicine dispensing rack, and the transmission grooves are arranged in a through manner. The driving frames are symmetrically arranged on the upper walls at both ends of the medicine dispensing rack. The driving shaft is rotatably arranged between the driving frames. The driven gears are symmetrically arranged at both ends of the driving shaft, and the driven gears are arranged vertically with the transmission grooves. The gear transmission belt passes through the transmission grooves and is wound between the driving gear and the driven gears. The driving gear and the driven gears are respectively engaged with the gear transmission belt. The liquid pressing mechanism includes a liquid pressing cam, a return spring, an arc-shaped panel, a liquid pressing rod, a liquid pressing plate, a medicine dispensing cylinder, a transparent cover and a medicine dispensing valve. Multiple groups of the liquid pressing cams are arranged on the outer side of the driving shaft. The return spring is arranged on the upper wall of the medicine dispensing rack below the liquid pressing cam. The arc-shaped panel is arranged on the side of the return spring away from the medicine dispensing rack, and the return spring is in an extended state. The medicine dispensing cylinder is arranged through the inner wall of the medicine dispensing rack inside the return spring, and the medicine dispensing cylinder is arranged in a through manner. The transparent cover is communicated and arranged on the bottom wall of the medicine dispensing cylinder. The liquid pressing plate is slidably arranged on the inner wall of the medicine dispensing cylinder. The liquid pressing rod is arranged between the arc-shaped panel and the liquid pressing plate. The medicine dispensing valve is communicated and arranged on the side wall of the medicine dispensing cylinder. The rolling mechanism includes a groove, a rolling rod, a rolling ball, a rolling spring and mixing blades. The groove is arranged between the liquid pressing rod and the liquid pressing plate, and the groove is arranged with an open bottom end. The rolling rod is slidably arranged on the inner wall of the groove. The rolling ball is arranged on the bottom wall of the rolling rod. The rolling spring is arranged between the inner wall of the groove and the rolling rod. Multiple groups of the mixing blades are arranged on the outer side of the rolling rod.
[0007] During use, in the initial state, the liquid pressing cam does not contact the arc-shaped panel. The return spring drives the arc-shaped panel to rise through deformation, opening the medicine dispensing valve. The medicine dispensing valve is conducted with the medicine dispensing cylinder. The required liquid medicine for mixing reaction is filled into the medicine dispensing cylinder through the medicine dispensing valve. The driving motor drives the driving gear to rotate through the power end. The driving gear drives the driven gear to rotate through the gear transmission belt. The driven gear drives the liquid pressing cam to rotate through the driving shaft. When the liquid pressing cam rotates, it presses down on the arc-shaped panel. The protruding end of the liquid pressing cam is arranged at an acute angle with the surface of the arc-shaped panel. The return spring deforms and shortens, and the depth of the liquid pressing plate entering the medicine dispensing cylinder increases. When the liquid level of the liquid medicine fits the bottom wall of the liquid pressing plate, the filling of the liquid medicine into the medicine dispensing cylinder stops, and the medicine dispensing valve is closed. The driving motor drives the liquid pressing cam to rotate through the driving gear, the gear transmission belt, the driven gear and the driving shaft. The protruding part of the liquid pressing cam continuously presses down on the arc-shaped panel. The arc-shaped panel drives the liquid pressing plate through the liquid pressing rod to continuously pump and press the liquid medicine inside the medicine dispensing cylinder, ensuring the full reaction of the liquid medicine inside the medicine dispensing cylinder.
[0008] Preferably, the pressure reducing mechanism includes a telescopic tube, a buffer tube and a pressure relief valve. The telescopic tube is disposed through the inner wall of the liquid pressing plate. The buffer tube is disposed through the medicine dispensing cylinder and communicated with one end of the telescopic tube away from the liquid pressing plate. The pressure relief valve is communicated with one side of the buffer tube away from the telescopic tube. The air filtering mechanism includes a filtering frame, a filtering cylinder, a water absorbent cotton layer, an exhaust joint, an activated carbon adsorption layer and a filtering tube. The filtering frame is disposed on one side of the medicine dispensing frame away from the buffer tube. A plurality of groups of the filtering cylinders are disposed through the inner wall of one end of the filtering frame away from the medicine dispensing frame. The activated carbon adsorption layer is disposed on the inner wall of the filtering cylinder. The exhaust joint is communicated with one side of the filtering cylinder away from the medicine dispensing frame. The water absorbent cotton layer is disposed on the inner wall of one end of the filtering cylinder close to the exhaust joint. The filtering tube is communicated between one end of the pressure relief valve away from the buffer tube and one side of the filtering cylinder away from the exhaust joint.
[0009] During use, when the protruding end of the liquid pressing cam driven by the drive shaft is perpendicular to the upper surface of the arc-shaped panel, the liquid pressing rod drives the liquid pressing plate to press down the liquid medicine, and the internal pressure of the liquid medicine increases. Part of the liquid medicine enters the buffer tube through the telescopic tube under the extrusion force, reducing the extrusion intensity received by the medicine dispensing cylinder. When the liquid medicine is extruded, the internal pressure thereof will increase, and the change in the increased pressure will change the interaction between the reactant molecules, increasing the collision frequency and collision force between the molecules, thereby accelerating the reaction rate of the liquid medicine inside the medicine dispensing cylinder. When the protruding end of the liquid pressing cam driven by the drive shaft moves away from the upper surface of the arc-shaped panel, the reset spring elastically resets to drive the arc-shaped panel to rise. The arc-shaped panel drives the liquid pressing plate to slide up along the inner wall of the medicine dispensing cylinder through the liquid pressing rod. Part of the gas inside the buffer tube enters the medicine dispensing cylinder through the telescopic tube, reducing the load pressure borne by the medicine dispensing cylinder. Under the suction of the liquid pressing plate, a negative pressure state is formed above the liquid level of the liquid medicine, and the bubbles contained in the liquid medicine are more likely to escape from the liquid medicine at low pressure, thereby ensuring the full reaction between the liquid medicine molecules.
[0010] Specifically, the series-type liquid discharging mechanism includes a liquid discharging tube and a liquid discharging valve. The liquid discharging tube is disposed through the inner wall of the base. The liquid discharging valve is disposed through the base and communicated between the transparent cover and the liquid discharging tube.
[0011] During use, when the reaction of the liquid medicine inside the medicine dispensing cylinder is completed, the liquid discharging valve is opened, the liquid discharging tube is communicated with the medicine dispensing cylinder, and the proportioned medicine inside the medicine dispensing cylinder is discharged through the liquid discharging tube.
[0012] Wherein, a controller is disposed on the upper wall of the base.
[0013] Preferably, the controller is electrically connected to the drive motor.
[0014] The beneficial effects obtained by adopting the above structure are as follows: Compared with the prior art, this solution combines a cam structure with an elastic structure. Through the provided ramming and mixing mechanism, buffer-type exhaust mechanism, and series-type liquid drainage mechanism, and with the coordinated use of the drive mechanism, liquid pressing mechanism, rolling mechanism, pressure reducing mechanism, and air filtering mechanism, the continuous rotation of the liquid pressing cam driven by the drive shaft enables continuous pumping and pressing operations on the liquid medicine inside the medicine dispensing cylinder. On the one hand, the negative pressure effect is utilized to accelerate the escape of bubbles generated during the liquid medicine mixing reaction, reduce the occurrence of adverse reactions in the liquid medicine, and ensure the effectiveness of the proportioned medicine. On the other hand, through the extrusion operation on the liquid medicine during the proportioning process, the contact opportunity and collision frequency between molecules are increased, the reaction rate of the liquid medicine is accelerated, and the liquid medicine can be better mixed. The drive motor drives the liquid pressing cam to rotate through the driving gear, gear transmission belt, driven gear, and drive shaft. The protruding part of the liquid pressing cam continuously presses down on the arc-shaped panel, and the arc-shaped panel drives the liquid pressing plate through the liquid pressing rod to continuously pump and press the liquid medicine inside the medicine dispensing cylinder, ensuring the full reaction of the liquid medicine inside the medicine dispensing cylinder. Description of the Drawings
[0015] Figure 1 It is a schematic diagram of the overall structure of this solution; Figure 2 It is a front perspective view of this solution; Figure 3 It is a bottom perspective view of this solution; Figure 4 It is a schematic diagram of the structure of the drive mechanism of this solution; Figure 5 It is a schematic diagram of the structure of the rolling mechanism of this solution; Figure 6 It is a schematic diagram of the structure of the medicine dispensing cylinder of this solution; Figure 7 It is a schematic diagram of the combined structure of the base and the medicine dispensing rack of this solution; Figure 8 It is a schematic diagram of the structure of the liquid pressing mechanism of this solution; Figure 9 It is the front view of this solution; Figure 10 It is the side view of this solution; Figure 11 It is the top view of this solution; Figure 12 It is for Figure 9 the sectional view of part A-A of Figure 13 It is for Figure 12 the enlarged structural view of part I of
[0016] Among them, 1. Base, 2. Medicine dispensing rack, 3. Kneading and mixing mechanism, 4. Driving mechanism, 5. Driving motor, 6. Driving gear, 7. Transmission groove, 8. Driving frame, 9. Driven gear, 10. Gear transmission belt, 11. Liquid pressing mechanism, 12. Liquid pressing cam, 13. Return spring, 14. Arc panel, 15. Liquid pressing rod, 16. Liquid pressing plate, 17. Medicine dispensing cylinder, 18. Transparent cover, 19. Rolling mechanism, 20. Groove, 21. Rolling rod, 22. Rolling ball, 23. Rolling spring, 24. Mixing blade, 25. Buffer type exhaust mechanism, 26. Pressure reducing mechanism, 27. Telescopic tube, 28. Buffer tube, 29. Pressure relief valve, 30. Air filtering mechanism, 31. Filtering rack, 32. Filtering cylinder, 33. Water absorbent cotton layer, 34. Exhaust joint, 35. Series type liquid discharging mechanism, 36. Liquid discharging pipe, 37. Liquid discharging valve, 38. Controller, 39. Activated carbon adsorption layer, 40. Driving shaft, 41. Filtering pipe, 42. Medicine dispensing valve.
[0017] The accompanying drawings are used to provide a further understanding of the solution and form a part of the description. They are used together with the embodiments of the solution to explain the solution and do not constitute a limitation to the solution. Specific embodiments
[0018] The following will clearly and completely describe the technical solutions in the embodiments of the solution with reference to the accompanying drawings in the embodiments of the solution. Obviously, the described embodiments are only a part of the embodiments of the solution, rather than all the embodiments; based on the embodiments in the solution, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the solution.
[0019] In the description of the solution, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. indicating the orientation or position relationship are based on the orientation or position relationship shown in the accompanying drawings. They are only for the convenience of describing the solution and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be understood as a limitation to the solution.
[0020] Such as Figures 1 - 13As shown in the figure, a chemical agent proportioning device for desulfurized wastewater treatment proposed by this solution includes a base 1, a medicine dispensing rack 2, a ramming type mixing mechanism 3, a buffer type exhaust mechanism 25, and a series type liquid discharging mechanism 35. The medicine dispensing rack 2 is arranged on the upper wall of the base 1. The ramming type mixing mechanism 3 includes a driving mechanism 4, a liquid pressing mechanism 11, and a rolling mechanism 19. The driving mechanism 4 is arranged at both ends of the medicine dispensing rack 2. The liquid pressing mechanism 11 is arranged on the upper wall of the medicine dispensing rack 2. The rolling mechanism 19 is arranged inside the liquid pressing mechanism 11. The buffer type exhaust mechanism 25 includes a pressure reducing mechanism 26 and a gas filtering mechanism 30. The pressure reducing mechanism 26 is arranged on one side of the liquid pressing mechanism 11. The gas filtering mechanism 30 is arranged on the side of the medicine dispensing rack 2 away from the pressure reducing mechanism 26. The series type liquid discharging mechanism 35 is arranged on the inner wall of the base 1.
[0021] As a further preference of the solution in this case, the driving mechanism 4 includes a driving motor 5, a driving gear 6, a transmission slot 7, a driving frame 8, a driven gear 9, a gear transmission belt 10, and a driving shaft 40. The driving motors 5 are symmetrically arranged on the inner walls at both ends of the medicine dispensing rack 2. The driving gear 6 is arranged at the power end of the driving motor 5. The transmission slots 7 are symmetrically arranged on the upper walls at both ends of the medicine dispensing rack 2, and the transmission slots 7 are arranged in a penetrating manner. The driving frames 8 are symmetrically arranged on the upper walls at both ends of the medicine dispensing rack 2. The driving shaft 40 is rotatably arranged between the driving frames 8. The driven gears 9 are symmetrically arranged at both ends of the driving shaft 40, and the driven gears 9 are arranged vertically with the transmission slots 7. The gear transmission belt 10 penetrates through the transmission slots 7 and is wound between the driving gear 6 and the driven gears 9. The driving gear 6 and the driven gears 9 are respectively engaged with the gear transmission belt 10. The liquid pressing mechanism 11 includes a liquid pressing cam 12, a return spring 13, an arc-shaped panel 14, a liquid pressing rod 15, a liquid pressing plate 16, a medicine dispensing cylinder 17, a transparent cover 18, and a medicine dispensing valve 42. Multiple groups of the liquid pressing cams 12 are arranged on the outer side of the driving shaft 40. The return spring 13 is arranged on the upper wall of the medicine dispensing rack 2 below the liquid pressing cam 12. The arc-shaped panel 14 is arranged on the side of the return spring 13 away from the medicine dispensing rack 2, and the return spring 13 is arranged in an extended state. The medicine dispensing cylinder 17 is arranged through the inner wall of the medicine dispensing rack 2 inside the return spring 13, and the medicine dispensing cylinder 17 is arranged in a penetrating manner. The transparent cover 18 is communicated and arranged at the bottom wall of the medicine dispensing cylinder 17. The liquid pressing plate 16 is slidably arranged inside the medicine dispensing cylinder 17. The liquid pressing rod 15 is arranged between the arc-shaped panel 14 and the liquid pressing plate 16. The medicine dispensing valve 42 is communicated and arranged on the side wall of the medicine dispensing cylinder 17. The rolling mechanism 19 includes a groove 20, a rolling rod 21, a rolling ball 22, a rolling spring 23, and mixing blades 24. The groove 20 is arranged between the liquid pressing rod 15 and the liquid pressing plate 16, and the groove 20 is arranged with an open bottom end. The rolling rod 21 is slidably arranged inside the groove 20. The rolling ball 22 is arranged at the bottom wall of the rolling rod 21. The rolling spring 23 is arranged between the inner wall of the groove 20 and the rolling rod 21. Multiple groups of the mixing blades 24 are arranged on the outer side of the rolling rod 21.
[0022] The pressure relief mechanism 26 includes a telescopic tube 27, a buffer tube 28 and a pressure relief valve 29. The telescopic tube 27 is disposed through the inner wall of the liquid pressing plate 16. The buffer tube 28 is disposed through the medicine dispensing cylinder 17 and communicated with one end of the telescopic tube 27 away from the telescopic tube 27. The pressure relief valve 29 is communicated with one side of the buffer tube 28 away from the telescopic tube 27. The air filtering mechanism 30 includes a filter rack 31, a filter cylinder 32, a water absorption cotton layer 33, an exhaust joint 34, an activated carbon adsorption layer 39 and a filter tube 41. The filter rack 31 is disposed on one side of the medicine dispensing rack 2 away from the buffer tube 28. A plurality of the filter cylinders 32 are disposed through the inner wall of one end of the filter rack 31 away from the medicine dispensing rack 2. The activated carbon adsorption layer 39 is disposed on the inner wall of the filter cylinder 32. The exhaust joint 34 is communicated with one side of the filter cylinder 32 away from the medicine dispensing rack 2. The water absorption cotton layer 33 is disposed on the inner wall of one end of the filter cylinder 32 close to the exhaust joint 34. The filter tube 41 is communicated between one end of the pressure relief valve 29 away from the buffer tube 28 and one side of the filter cylinder 32 away from the exhaust joint 34.
[0023] The series-type liquid discharging mechanism 35 includes a liquid discharging tube 36 and a liquid discharging valve 37. The liquid discharging tube 36 is disposed through the inner wall of the base 1. The liquid discharging valve 37 is disposed through the base 1 and communicated between the transparent cover 18 and the liquid discharging tube 36.
[0024] A controller 38 is disposed on the upper wall of the base 1.
[0025] The controller 38 is electrically connected to the driving motor 5.
[0026] During specific use, the pressing liquid cam 12 does not contact the arc-shaped panel 14 in the initial state, the liquid discharging valve 37 is in a closed state, the reset spring 13 drives the arc-shaped panel 14 to rise through deformation, the controller 38 controls the driving motor 5 to start, the driving motor 5 drives the driving gear 6 to rotate through the power end, the driving gear 6 drives the driven gear 9 to rotate through the gear transmission belt 10, the driven gear 9 drives the pressing liquid cam 12 to rotate through the driving shaft 40, the pressing liquid cam 12 presses down on the arc-shaped panel 14 during rotation, the protruding end of the pressing liquid cam 12 is arranged at an acute angle with the surface of the arc-shaped panel 14, the reset spring 13 deforms and shortens, and the depth of the liquid pressing plate 16 entering the medicine dispensing cylinder 17 increases; Open the dispensing valve 42. The dispensing valve 42 is communicated with the dispensing cylinder 17, and the liquid medicine required for mixing reaction is filled into the dispensing cylinder 17 through the dispensing valve 42. When the liquid level of the liquid medicine fits the bottom wall of the liquid pressing plate 16, stop filling the liquid medicine into the dispensing cylinder 17, close the dispensing valve 42, and the controller 38 controls the driving motor 5 to start. The driving motor 5 drives the liquid pressing cam 12 to rotate through the driving gear 6, the gear transmission belt 10, the driven gear 9 and the driving shaft 40. The protruding part of the liquid pressing cam 12 continuously presses down the arc-shaped panel 14, and the arc-shaped panel 14 drives the liquid pressing plate 16 through the liquid pressing rod 15 to continuously pump and press the liquid medicine inside the dispensing cylinder 17, ensuring the full reaction of the liquid medicine inside the dispensing cylinder 17; Preset the pressure relief threshold of the pressure relief valve 29. When the pressure inside the buffer pipe 28 reaches the pressure relief threshold of the pressure relief valve 29, the pressure relief valve 29 is conducted, and the bubbles inside the pumped liquid medicine enter the inside of the filter cylinder 32 through the buffer pipe 28 and the filter pipe 41. The gas is filtered through the activated carbon adsorption layer 39 and the water absorbent cotton layer 33 and then discharged through the exhaust joint 34; When the driving shaft 40 drives the protruding end of the liquid pressing cam 12 away from the upper surface of the arc-shaped panel 14, the return spring 13 elastically resets to drive the arc-shaped panel 14 to rise. The arc-shaped panel 14 drives the liquid pressing plate 16 to slide up along the inner wall of the dispensing cylinder 17 through the liquid pressing rod 15. At this time, the distance between the bottom wall of the liquid pressing plate 16 and the liquid level of the liquid medicine is such that under the suction of the liquid pressing plate 16, a negative pressure state is formed above the liquid level of the liquid medicine, and the bubbles contained in the liquid medicine are easily released from the liquid medicine at low pressure, thus ensuring the full reaction between the liquid medicine molecules; When the driving shaft 40 drives the protruding end of the liquid pressing cam 12 to be perpendicular to the upper surface of the arc-shaped panel 14, the liquid pressing rod 15 drives the liquid pressing plate 16 to press the liquid medicine. The gas extracted from the liquid medicine and part of the liquid medicine enter the inside of the buffer pipe 28 under the extrusion force through the telescopic pipe 27, reducing the extrusion strength borne by the dispensing cylinder 17. The increase in the pressure inside the dispensing cylinder 17 helps to change the interaction between the reactant molecules, increase the collision frequency and collision force between the molecules, and thus accelerate the reaction rate of the liquid medicine inside the dispensing cylinder 17; When the driving shaft 40 drives the protruding end of the liquid pressing cam 12 away from the upper surface of the arc-shaped panel 14 again, the liquid pressing plate 16 rises, the liquid medicine inside the buffer pipe 28 flows back into the dispensing cylinder 17 through the telescopic pipe 27, and the gas inside the buffer pipe 28 is sucked into the dispensing cylinder 17 through the telescopic pipe 27, reducing the load pressure borne by the dispensing cylinder 17; Some of the particulate matter in the liquid medicine precipitates on the bottom wall of the transparent cover 18 and does not fully react. When the protruding end of the liquid pressing cam 12 rotates perpendicular to the upper surface of the arc-shaped panel 14, the liquid pressing plate 16 drives the rolling rod 21 to descend through the rolling spring 23. The rolling spring 23 is set to be elongated. The rolling rod 21 drives the rolling ball 22 to fit with the bottom wall of the transparent cover 18 by using the deformation of the rolling spring 23, and grinds the granular medicine precipitated on the bottom wall of the transparent cover 18. When the rolling rod 21 moves up and down with the liquid pressing plate 16, it drives the mixing blade 24 to stir the liquid medicine inside the medicine dispensing cylinder 17 up and down, so as to promote the reaction between the granular medicine and the liquid medicine; Observe the quantity of the precipitated medicine through the transparent cover 18. When the precipitate disappears and the reaction with the liquid medicine inside the medicine dispensing cylinder 17 is completed, manually open the pressure relief valve 29. The outside air enters the inside of the filter cylinder 32 through the exhaust joint 34. After being filtered by the water absorption cotton layer 33, the outside air enters the inside of the medicine dispensing cylinder 17. Open the liquid discharge valve 37, the liquid discharge pipe 36 is communicated with the medicine dispensing cylinder 17, and the prepared medicine inside the medicine dispensing cylinder 17 is discharged through the liquid discharge pipe 36; Just repeat the above operations for the next use.
[0027] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to this process, method, article or device.
[0028] The above describes the present solution and its implementation manners. This description is not restrictive. What is shown in the drawings is only one of the implementation manners of the present solution, and the actual structure is not limited thereto. Generally speaking, if those of ordinary skill in the art are inspired by it and design similar structural manners and embodiments without creative efforts without departing from the creative purpose of the present solution, they shall fall within the protection scope of the present solution.
Claims
1. A reagent proportioning device for desulfurization wastewater treatment, comprising a base and a reagent proportioning rack, characterized in that: It also includes a tamping type mixing mechanism, a buffer type exhaust mechanism and a serial type liquid discharge mechanism. The medicine dispensing rack is arranged on the upper wall of the base. The tamping type mixing mechanism includes a driving mechanism, a liquid pressing mechanism and a rolling mechanism. The driving mechanism is arranged at both ends of the medicine dispensing rack, the liquid pressing mechanism is arranged on the upper wall of the medicine dispensing rack, and the rolling mechanism is arranged inside the liquid pressing mechanism. The buffer type exhaust mechanism includes a decompression mechanism and an air filtering mechanism. The decompression mechanism is arranged on one side of the liquid pressing mechanism, and the air filtering mechanism is arranged on the side of the medicine dispensing rack away from the decompression mechanism. The serial type liquid discharge mechanism is arranged on the inner wall of the base. The driving mechanism comprises a driving frame and a driving shaft; The driving frames are symmetrically arranged on the upper walls of both ends of the medicine dispensing frame, and the driving shaft is rotatably arranged between the driving frames; The liquid pressing mechanism comprises a liquid pressing cam, a return spring, an arc plate, a liquid pressing rod, a liquid pressing plate, a medicine dispensing cylinder and a transparent cover; A plurality of groups of the liquid-pressing cams are arranged outside the driving shaft, the reset spring is arranged on the upper wall of the medicine dispensing rack below the liquid-pressing cam, the arc panel is arranged on the side of the reset spring away from the medicine dispensing rack, the reset spring is extended, the medicine dispensing barrel penetrates the inner wall of the medicine dispensing rack arranged inside the reset spring, the medicine dispensing barrel is through-set, the transparent cover is connected to the bottom wall of the medicine dispensing barrel, the liquid-pressing plate is slidably arranged on the inner wall of the medicine dispensing barrel, and the liquid-pressing rod is arranged between the arc panel and the liquid-pressing plate; The pressure relief mechanism includes a telescopic tube, a buffer tube and a pressure relief valve; The telescopic tube is penetrated through the inner wall of the liquid pressure plate, the buffer tube is penetrated through the medicine dispensing cylinder and is connected to an end of the telescopic tube away from the liquid pressure plate, and the pressure relief valve is connected to a side of the buffer tube away from the telescopic tube.
2. The reagent proportioning equipment for desulfurization wastewater treatment according to claim 1 is characterized in that: The driving mechanism also includes a driving motor, a driving gear, a transmission groove, a driven gear and a gear transmission belt. The driving motor is symmetrically arranged on the inner walls at both ends of the dispensing rack, the driving gear is arranged at the power end of the driving motor, the transmission groove is symmetrically arranged on the upper walls at both ends of the dispensing rack, the transmission groove is a through arrangement, the driven gear is symmetrically arranged at both ends of the driving shaft, the driven gear and the transmission groove are vertically arranged, the gear transmission belt passes through the transmission groove and is wound between the driving gear and the driven gear, and the driving gear and the driven gear are respectively meshed with the gear transmission belt.
3. The reagent proportioning equipment for desulfurization wastewater treatment according to claim 1 is characterized in that: The liquid pressing mechanism further comprises a medicine dispensing valve, and the medicine dispensing valve is connected to the side wall of the medicine dispensing cylinder.
4. The reagent proportioning equipment for desulfurization wastewater treatment according to claim 1 is characterized in that: The rolling mechanism includes a groove, a rolling rod, a rolling ball, a rolling spring and mixing blades. The groove is arranged between the liquid pressing rod and the liquid pressing plate, and the groove is open at the lower end. The rolling rod is slidably arranged on the inner wall of the groove, the rolling ball is arranged on the bottom wall of the rolling rod, the rolling spring is arranged between the inner wall of the groove and the rolling rod, and multiple groups of mixing blades are arranged on the outside of the rolling rod.
5. The reagent proportioning equipment for desulfurization wastewater treatment according to claim 1, characterized in that: The air filtering mechanism includes a filter frame, a filter cartridge, a water-absorbing cotton layer, an exhaust joint, an activated carbon adsorption layer and a filter tube. The filter frame is arranged on a side of the medicine dispensing frame away from the buffer tube. Multiple groups of filter cartridges are arranged through the inner wall of one end of the filter frame away from the medicine dispensing frame. The activated carbon adsorption layer is arranged on the inner wall of the filter cartridge.
6. The reagent proportioning equipment for desulfurization wastewater treatment according to claim 5, characterized in that: The exhaust joint is connected to the side of the filter cartridge away from the medicine dispensing rack, the absorbent cotton layer is arranged on the inner wall of one end of the filter cartridge close to the exhaust joint, and the filter tube is connected between the end of the pressure relief valve away from the buffer tube and the side of the filter cartridge away from the exhaust joint.
7. The reagent proportioning equipment for desulfurization wastewater treatment according to claim 5, characterized in that: The series type liquid discharge mechanism comprises a liquid discharge pipe and a liquid discharge valve. The liquid discharge pipe is arranged through the inner wall of the base, and the liquid discharge valve is arranged through the base and communicates between the transparent cover and the liquid discharge pipe.
Citation Information
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